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Evaluation of genetic parameters affecting the reliability and effectiveness of kinship reconstruction in Forest and Tundra Nenets populations using X-STR markers

https://doi.org/10.18699/vjgb-26-76

Abstract

X-chromosomal STR markers (X-STR) are informative tools for kinship reconstruction, particularly in cases  where standard autosomal panels have limited discriminatory power: when reconstructing kinship between full sisters, paternal half-sisters, paternal grandmother and granddaughter, maternal aunt and niece. However, the use of X-STR markers in forensic genetics requires consideration of linkage disequilibrium structure and the use of haplotype frequencies in calculating the likelihood ratio (LR). In this work, the genetic structure of Forest and Tundra Nenets populations was assessed using 16 X-STR markers in order to obtain reference values. A sample of 504 Nenets males was analyzed, divided into subethnic groups (Forest and Tundra Nenets), phratries of Tundra Nenets (Haryuchi and Vanuito), as well as geographical local groups (individuals living in the Antipayutinskaya, Gydan and Nakhodka tundras). No statistically significant differences were found between the samples, and the pairwise Fst values (exact test) did not exceed 0.01. The Nenets population demonstrated an intermediate level of genetic diversity typical of Indigenous  Siberian populations. The loci DXS8377 (He = 0.910) and DXS10079 (He = 0.839) were found to be the most polymorphic in the Nenets population. Of the 16 markers, 13 were highly informative (PIC > 0.5). The combined power of exclusion (CPE) was 0.99996, which indicates that the panel is highly informative for reconstructing kinship relationships. Pairwise analysis of linkage disequilibrium (LD) revealed statistically significant deviations for 46 pairs of markers out of 120; however, the r2 coefficient for all pairs of alleles did not exceed 0.09, which indicates a weak correlation between alleles. This study provides the reference data of allele and genotype frequencies recommended for use in assessing the likelihood ratio in the reconstruction of kinship relationships. The obtained reference data will contribute to improving the reliability and efficiency of forensic genetic analyses in the Russian Federation. 

About the Authors

K. V. Vagaytseva
Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences
Russian Federation

Tomsk



N. A. Kolesnikov
Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences
Russian Federation

Tomsk



O. M. Burenkova
Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences
Russian Federation

Tomsk



I. A. Volkova
Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences
Russian Federation

Tomsk



O. D. Ruzavina
Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences
Russian Federation

Tomsk



N. V. Kharkov
Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences
Russian Federation

Tomsk



V. A. Stepanov
Research Institute of Medical Genetics, Tomsk National Research Medical Center of the Russian Academy of Sciences
Russian Federation

Tomsk



References

1. Botstein D., White R.L., Skalnick M.H., Davies R.W. Construction of a genetic linkage map in man using restriction fragment length polymorphism. Am J Hum Genet. 1980;32(3):314-331

2. Excoffier L., Lischer H.E.L. Arlequin suite ver 3.5: a new series of programs to perform population genetics analyses under Linux and Windows. Mol Ecol Resour. 2010;10(3):564-567. doi 10.1111/j.1755-0998.2010.02847.x

3. Ge J., Budowle B. How many familial relationship testing results could be wrong? PLoS Genet. 2020;16(8):e1008929. doi 10.1371/journal.pgen.1008929

4. Gusmão L., Antão-Sousa S., Faustino M., Abovich M.A., Aguirre D., Alghafri R., Alves C., … Turchi C., Vullo C., Yurrebaso I., Pereira V., Pinto N. X­chromosomal STRs: metapopulations and mutation rates. Forensic Sci Int Genet. 2025;76:103232. doi 8.1016/j.fsigen.2025.103232

5. Kharkov V.N., Valikhova L.V., Adamov D.S., Zarubin A.A., Khit rinskaya I.Yu., Stepanov V.A. The Forest and Tundra Nenets: differences in Y­chromosome haplogroups. Vavilovskii Zhurnal Genetiki i Selektsii = Vavilov J Genet Breed. 2025;29(5):711-721. doi 10.18699/vjgb-25-78

6. Khomic L.V. The Nenets: Historical and Ethnographic Essays. St. Petersburg: Nauka Publ., 1966 (in Russian)

7. Lê S., Josse J., Husson F. FactoMineR: an R package for multivariate analysis. J Stat Softw. 2008;25(1):1-18. doi 10.18637/jss.v025.i01

8. Mršić G., Ozretić P., Crnjac J., Merkaš S., Račić I., Rožić S., Sukser V., Popović M., Korolija M. Analysis of 12 X-STR loci in the population of south Croatia. Mol Biol Rep. 2017;44(1):183-189. doi 10.1007/s11033-017-4096-1

9. SoftGenetics LLC. GeneMarker® HID Software User Manual. Version 2.0. State College, PA: SoftGenetics LLC, 2012

10. Tillmar A.O., Kling D., Butler J.M., Parson W., Prinz M., Schneider P.M., Egeland T., Gusmão L. DNA Commission of the International Society for Forensic Genetics (ISFG): guidelines on the use of X­STRs in kinship analysis. Forensic Sci Int Genet. 2017;29: 269-275. doi 10.1016/j.fsigen.2017.05.005

11. Vagaitseva K.V., Kharkov V.N., Cherpinskaya K.V., Khitrin skaya I. Yu., Stepanov V.A. Genetic variability of X-linked STR markers in Siberian populations. Mol Biol. 2015;49(2):267-274. doi 10.1134/S0026893315020132

12. Vagaitseva K.V., Kolesnikov N.A., Skalin M.D., Valikhova L.V., Ruzavina O.D., Pestretsova D.E., Vysochina A.N., Kharkov V.N., Stepanov V.A. Genetic diversity of Telengite and Altai-kizhi populations by markers used in forensic genetics. Vestnik Tomskogo Gosudarstvennogo Universiteta. Biologiya = Tomsk State University Journal of Biology. 2025;69:29-37. doi 10.17223/19988591/69/4 (in Russian)

13. Zhang Y., Yu Z., Mo X., Zhao X., Li W., Liu H., Liu C., Wu R., Sun H. Comparative evaluation of autosomal STRs and X-chromosome STRs as a complement of autosomal STRs in kinship testing in Southern Han Chinese. Ann Hum Biol. 2021a;48(1):66-69. doi 10.1080/03014460.2020.1856926

14. Zhang Y., Yu Z., Mo X., Zhao X., Li W., Liu H., Liu C., Wu R., Sun H. Development and validation of a new 18 X-STR typing assay for forensic applications. Electrophoresis. 2021b;42(6):766-773. doi 10.1002/elps.202000168

15. Zvénigorosky V., Sabbagh A., Gonzalez A., Fausser J.L., Palstra F., Romanov G., Solovyev A., Barashkov N., Fedorova S., Crubézy É., Ludes B., Keyser C. The limitations of kinship determinations using STR data in ill-defined populations. Int J Legal Med. 2020;134(6): 1981-1990. doi 10.1007/s00414-020-02298-w

16. ChrX-STR.org 2.0 [site]. Forensic ChrX Research; [n.d.; updated Jun 25, 2009; cited Jan 10, 2026]. Available from: https://www.chrxstr.org/xdb/index.jsf


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